Supplementary Information. Back-Contacted Hybrid Organic-Inorganic Perovskite Solar Cells

Similar documents
Supporting Information The Roles of Alkyl Halide Additives in Enhancing Perovskite Solar Cell Performance

Hysteresis-free low-temperature-processed planar perovskite solar cells with 19.1% efficiency

Supporting Information

Supporting Information

Supplementary Information. Formation of porous SnS nanoplate networks from solution and their application in hybrid solar cells

Supporting Information

Low-temperature-processed inorganic perovskite solar cells via solvent engineering with enhanced mass transport

Shanghai Institute of Ceramics, Chinese Academy of Sciences, Dingxi, 1295, Changning,

A One-Step Low Temperature Processing Route for Organolead Halide Perovskite Solar Cells

Efficient Grain Boundary Suture by Low-cost Tetra-ammonium Zinc Phthalocyanine for Stable Perovskite Solar Cells with Expanded Photo-response

Improving Efficiency and Reproducibility of Perovskite Solar Cells through Aggregation Control in Polyelectrolytes Hole Transport Layer

Supplementary Figure 1 XRD pattern of a defective TiO 2 thin film deposited on an FTO/glass substrate, along with an XRD pattern of bare FTO/glass

Electronic Supplementary Information

High Performance Perovskite Solar Cells based on a PCBM:polystyrene blend electron transport layer

Department of Chemical Engineering, Pohang University of Science and Technology, San 31, Nam-gu, Pohang, Gyeongbuk , Republic of Korea.

Supplementary Information

Influence of Hot Spot Heating on Stability of. Conversion Efficiency of ~14%

Supporting Information

Electronic Supplementary Information

Supporting Information

Two-dimensional homologous perovskites as light absorbing materials for solar cell applications

Supplementary Figures

Electronic Supplementary Information

Supplementary Figure 3. Transmission spectrum of Glass/ITO substrate.

All-Inorganic Perovskite Solar Cells

Supporting information

Enhanced photocurrent of ZnO nanorods array sensitized with graphene. quantum dots

Facile and purification-free synthesis of nitrogenated amphiphilic graphitic carbon dots

Cho Fai Jonathan Lau, Xiaofan Deng, Qingshan Ma, Jianghui Zheng, Jae S. Yun, Martin A.

An azafullerene acceptor for organic solar cells

Preparation of mixed-ion and inorganic perovskite solar cells using water and isopropanol as solvents for solar cell applications

Electronic Supplementary Information. inverted organic solar cells, towards mass production

Achieving high-performance planar perovskite solar cells with

Electronic Supplementary Information (ESI)

Tailoring of Electron Collecting Oxide Nano-Particulate Layer for Flexible Perovskite Solar Cells. Gajeong-Ro, Yuseong-Gu, Daejeon , Korea

Supporting Information. Benzophenone-based small molecular cathode interlayers with various polar groups for efficient polymer solar cells

Confined Synthesis of CdSe Quantum Dots in the Pores of Metal-Organic Frameworks

Band-gap tuning of lead halide perovskites using a sequential deposition process

Electronic Supplementary Information. Crystallographic Orientation Propagation in Metal Halide Perovskite Thin Films

Synergistic Improvements in Stability and Performance of Lead Iodide Perovskite Solar Cells Incorporating Salt Additives

10.6% Certified Colloidal Quantum Dot Solar Cells via Solvent-Polarity-Engineered Halide Passivation

High-Performance Photocoupler Based on Perovskite Light Emitting Diode and Photodetector

Supporting Information. Room temperature aqueous Sb 2 S 3 synthesis for inorganic-organic sensitized solar cells with efficiencies of up to 5.

Supplementary Figure 1. Cross-section SEM image of the polymer scaffold perovskite film using MAI:PbI 2 =1:1 in DMF solvent on the FTO/glass

Nanoimprint-Transfer-Patterned Solids Enhance Light Absorption in Colloidal Quantum Dot Solar Cells

Unveiling the Role of tbp-litfsi Complexes in Perovskite Solar Cells

Supporting Information

Direct measurements of exciton diffusion length limitations on organic solar cell performance

Laser Crystallization of Organic-Inorganic Hybrid

Electronic Supplementary Information. Yunlong Guo, Chao Liu, Kento Inoue, Koji Harano, Hideyuki Tanaka,* and Eiichi Nakamura*

Enhancing Perovskite Solar Cell Performance by Interface Engineering Using CH 3 NH 3 PbBr 0.9 I 2.1 Quantum Dots

Hole Selective NiO Contact for Efficient Perovskite Solar Cells with Carbon Electrode

Fabrication of Efficient Low-Bandgap Perovskite Solar Cells by Combining Formamidinium Tin Iodide with Methylammonium Lead Iodide

Supporting Information

Mixed Sn-Ge Perovskite for Enhanced Perovskite

CdTe quantum dot sensitized hexaniobate nanoscrolls and Photoelectrochemical properties

Supporting Information

Perovskite solar cells on metal substrate with high efficiency

Supporting Information s for

Mesoporous SnO 2 Single Crystals as an Effective Electron Collector for Perovskite Solar Cells

Enhances Photoelectrochemical Water Oxidation

All-Inorganic CsPbI 2 Br Perovskite Solar Cells with High Efficiency. Exceeding 13%

planar heterojunction perovskite solar cells to 19%

Organo-metal halide perovskite-based solar cells with CuSCN as inorganic hole selective contact

Supporting Information

Two-Dimensional CH 3 NH 3 PbI 3 Perovskite: Synthesis and Optoelectronic Application

Supporting Information for

Supporting information. and/or J -aggregation. Sergey V. Dayneko, Abby-Jo Payne and Gregory C. Welch*

Supporting Information. for

Supplementary Information. Atomic Layer Deposition of Platinum Catalysts on Nanowire Surfaces for Photoelectrochemical Water Reduction

Supporting Information

Supporting Information

Layered Mixed Tin-Lead Hybrid Perovskite Solar Cells with High Stability

Supporting Information for. Long-Distance Charge Carrier Funneling in Perovskite Nanowires Enable by Built-in Halide Gradient

A new concept of charging supercapacitors based on a photovoltaic effect

Title of file for HTML: Supplementary Information Description: Supplementary Figures and Supplementary References

Supplementary Materials

Two-Dimensional Organic Tin Halide. Perovskites with Tunable Visible Emission and

maximal photofluorescence decay time of 6 hours (purchased from Shenzhen HuiDuoSheng

Solution reduction synthesis of amine terminated carbon quantum dots

Electronic Supplementary Information. Low-temperature Benchtop-synthesis of All-inorganic Perovskite Nanowires

Supplementary Information

Supporting Information

Supporting Information

Supplementary Information Our InGaN/GaN multiple quantum wells (MQWs) based one-dimensional (1D) grating structures

Supplementary Materials for

Electronic Supplementary Information (ESI)

SUPPLEMENTARY INFORMATION

Supporting Information. Zn 2 SnO 4 -based photoelectrodes for organolead halide perovskite solar cells

Supporting Online Material for

Photo-Induced Charge Recombination Kinetics in MAPbI 3-

High performance carbon based printed perovskite solar cells with humidity assisted thermal treatment

Electrolessly deposited electrospun metal nanowire transparent

Supplementary Figures

Rational design of light-directed dynamic spheres

Supporting Information For: Direct Optical Determination of. Interfacial Transport Barriers in Molecular Tunnel Junctions

Supporting Information to Thermoplasmonic Semitransparent Nanohole Electrodes

School of Materials Science & Engineering, Xi'an Jiaotong University, No.28, Xianning West Road, Xi'an, Shaanxi, , P.R. China.

The deposition of these three layers was achieved without breaking the vacuum. 30 nm Ni

Pressure-Assisted Space-Confined Solvent- Engineering Strategy for Ultrasensitive. Photodetectors

Transcription:

Electronic Supplementary Material (ESI) for Journal of Materials Chemistry C. This journal is The Royal Society of Chemistry 2016 Journal of Materials Chemistry C Supplementary Information Back-Contacted Hybrid Organic-Inorganic Perovskite Solar Cells A. N. Jumabekov, *a E. Della Gaspera, a Z.-Q. Xu, b A. S. R. Chesman, a J. van Embden, c S. A. Bonke, d Q. Bao, b D. Vak a and U. Bach *ab a CSIRO Manufacturing, Clayton, Victoria 3168, Australia. b Monash University, Department of Materials Science & Engineering, Clayton, Victoria 3800, Australia. c RMIT University, School of Science, Melbourne, Victoria 3001, Australia. d Monash University, School of Chemistry, Clayton, Victoria 3800, Australia. Experimental Section Electrode Fabrication: Pre-patterned indium tin oxide (ITO) substrates were cleaned with acetone and isopropanol prior to the sputtering of a ~50 nm ZnO layer. 1 A thin layer (~2 μm) of photoresist was deposited via spin coating on the substrates with subsequent baking at 110 C for 2 min. The substrates were exposed to UV radiation through a photomask and the desired features on the photoresist were achieved by immersing the substrates into a developer bath for 40 sec. Then, layers of Al2O3 (100 nm), Al (30 nm) and Ni (50 nm) were deposited onto the substrates using an electron beam evaporator. Finally, the substrates were washed with acetone to remove the rest of the photoresist (lift-off process). Solar Cell Fabrication: The electrodes were annealed at 300 C in ambient atmosphere for 15 min prior to the deposition of a CH 3 NH 3 PbI 3 absorber layer. The absorber layer was then deposited using a method described by Huang et al. 2 A precursor solution used for the CH 3 NH 3 PbI 3 absorber layer consists of a 1:1 molar ratio of PbI 2 and methyl ammonium iodide (MAI) in N,N-dimethylformamide (DMF). Device Characterization: The work functions of different surfaces were investigated using a Riken Photoelectron Spectrometer (Model AC-2) at 15 nw. The thickness of the samples was measured with a Veeco Dektak 6M profilometer. Solar cell cross-section images were obtained using a Zeiss Merlin scanning electron microscope (SEM) operated at 5 kv and 120 pa. The J-V characteristics of the devices were measured in an inert atmosphere with a computer-controlled Keithley 2400 Sourcemeter. A 150 W Xenon lamp (Newport) coupled with an AM 1.5G solar spectrum filter was used as the light source. Light was illuminated through a quartz window of the glove box and the intensity was calibrated and monitored using a secondary reference photodiode (Hamamatsu S1133, with KG-5 filter, 2.8 2.4 mm of photosensitive area), which was calibrated by a certified reference cell (PVMeasurements, certified by NREL) under 1000 W m 2 AM 1.5G illumination from an Oriel AAA solar simulator fitted with a 1000 W Xenon lamp. Devices were measured at the same position as the secondary reference cell. The photocurrent (PC) and photoluminescence (PL) mapping was measured with a custom built setup based on modified WiTec Alpha 300R confocal Raman/PL microscope operating in reflection mode. A Nd:YAG diode laser with a wavelength of 532 nm (laser power, ~10 nw) chopped with a C995 (Terahertz Technologies Inc.) optical chopper with a frequency of 572 Hz was employed for excitation. The PL and current signal were detected by an air cooled CCD detector and a FEMTO LIA-MV-150 lock-in amplifier. Amplifier settings were chosen accordingly to achieve synchronous detection of both PL and PC signal. The bias was applied with the preamplifier. To acquire two-dimensional spectral mapping, the device under test (DUT) was moved with the X-Y piezo stage of the microscope. 3 1

Fig. S1 Optical microscope image of an IDE ITO on a glass substrate (20 magnification). The defects of standard IDE electrode fabrication are indicated by circles. 2

Fig. S2 Photographic image of a patterned ITO glass substrate with ~50 nm sputtered ZnO layer (left), QIDE (middle) and complete back-contacted perovskite solar cell device (right). 3

Fig. S3 Optical microscope image of QIDE on ITO glass substrate (50 magnification). 4

Fig. S4 PESA spectra of Ni and Ni heat-treated at 300 C (NiO x ). 5

Fig. S5 Transmission of an ITO glass substrate, QIDE and complete back-contacted perovskite solar cell device. Fig. S6 Optical microscopy image of the back-contacted perovskite device; (a) Image from the absorber side (top) and (b) image from the ITO/glass side (bottom). The red square in the images is the scan area for the photoluminescence and photocurrent measurements. 6

References 1 J. van Embden, A. S. R. Chesman, E. D. Gaspera, N. W. Duffy, S. E. Watkins, J. J. Jasieniak, J. Am. Chem. Soc., 2014, 136, 5237. 2 F. Huang, Y. Dkhissi, W. Huang, M. Xiao, I. Benesperi, S. Rubanov, Y. Zhu, X. Lin, L. Jiang, Y. Zhou, A. Gray-Weale, J. Etheridge, C. R. McNeill, R. A. Caruso, U. Bach, L. Spiccia, Y.-B. Cheng, Nano Energy, 2014, 10, 10. 3 F. Huang, Y. Dkhissi, W. Huang, M. Xiao, I. Benesperi, S. Rubanov, Y. Zhu, X. Lin, L. Jiang, Y. Zhou, A. Gray-Weale, J. Etheridge, C. R. McNeill, R. A. Caruso, U. Bach, L. Spiccia, Y.-B. Cheng, Nano Energy, 2014, 10, 10. 7